WO2006051147A1 - Systeme paratonnerre pour pale d'aerogenerateur constituee de lamines de fibre de carbone - Google Patents

Systeme paratonnerre pour pale d'aerogenerateur constituee de lamines de fibre de carbone Download PDF

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Publication number
WO2006051147A1
WO2006051147A1 PCT/ES2005/070156 ES2005070156W WO2006051147A1 WO 2006051147 A1 WO2006051147 A1 WO 2006051147A1 ES 2005070156 W ES2005070156 W ES 2005070156W WO 2006051147 A1 WO2006051147 A1 WO 2006051147A1
Authority
WO
WIPO (PCT)
Prior art keywords
carbon fiber
blade
laminates
wind turbine
carbon
Prior art date
Application number
PCT/ES2005/070156
Other languages
English (en)
Spanish (es)
Inventor
Jose Ignacio Llorente Gonzalez
Sergio Velez Oria
Original Assignee
Gamesa Innovation And Technology, S.L.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from ES200402847A external-priority patent/ES2255436B1/es
Application filed by Gamesa Innovation And Technology, S.L. filed Critical Gamesa Innovation And Technology, S.L.
Priority to US11/663,013 priority Critical patent/US7729100B2/en
Priority to ES05815151.5T priority patent/ES2612031T3/es
Priority to CN2005800386665A priority patent/CN101094986B/zh
Priority to EP05815151.5A priority patent/EP1826402B1/fr
Publication of WO2006051147A1 publication Critical patent/WO2006051147A1/fr

Links

Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D80/00Details, components or accessories not provided for in groups F03D1/00 - F03D17/00
    • F03D80/30Lightning protection
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B82NANOTECHNOLOGY
    • B82YSPECIFIC USES OR APPLICATIONS OF NANOSTRUCTURES; MEASUREMENT OR ANALYSIS OF NANOSTRUCTURES; MANUFACTURE OR TREATMENT OF NANOSTRUCTURES
    • B82Y30/00Nanotechnology for materials or surface science, e.g. nanocomposites
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03DWIND MOTORS
    • F03D1/00Wind motors with rotation axis substantially parallel to the air flow entering the rotor 
    • F03D1/06Rotors
    • F03D1/065Rotors characterised by their construction elements
    • F03D1/0675Rotors characterised by their construction elements of the blades
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G13/00Installations of lightning conductors; Fastening thereof to supporting structure
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02GINSTALLATION OF ELECTRIC CABLES OR LINES, OR OF COMBINED OPTICAL AND ELECTRIC CABLES OR LINES
    • H02G13/00Installations of lightning conductors; Fastening thereof to supporting structure
    • H02G13/80Discharge by conduction or dissipation, e.g. rods, arresters, spark gaps
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/70Wind energy
    • Y02E10/72Wind turbines with rotation axis in wind direction

Definitions

  • the object of the patent is a lightning rod system for transmission and reception of lightning in wind turbine blades. It is important to note that part of the blade is a carbon fiber laminate.
  • 'Lightning rod for wind turbine blades' consisting of an electrical conductor that extends from the tip of the blade passing through the interior of the blade and ending at the root of the blade in a spike axis that allows the blade to rotate .
  • the driver will be with or without an insulating coating and contributes to the proper holding of the blade.
  • US 6,612,810 presents a protection where the blade includes a pair of conductors extending longitudinally across the surface of the blade (it also incorporates anti-ice heating elements).
  • the tip of the blade has an impact receptor connected to a third conductor that runs through the inside of the blade. All conductors and heaters are connected to each other.
  • Carbon fiber as a conductive material, must be equipotentialized with the lightning arrester system.
  • the problem of leaving isolated conductive elements is the difference in potential so high that it is created between them due to the induction phenomena originated by the lightning as it passes through the lightning system. This potential difference can lead to a jump in the arc, which in the specific case in which the carbon fiber laminate constitutes the main resistant part of the blade, such a failure would be fatal.
  • the shovel lightning rod system with carbon fiber laminates object of the invention employs the lightning rod system based on a main cable, which is additionally provided with branches to connect it directly to the carbon fiber laminates, thus We ensure that both systems are at the same potential.
  • the method consists of the application of conductive resin based on nanocomposites in the immediate vicinity of the connection in a controlled manner. In this way, optimum electrical characteristics are achieved in the connection for the proper functioning of the blade's lightning protection system.
  • a specific embodiment may consist of two connections to each of the two laminates, said laminates are arranged on the two faces that are glued facing the blade shells called wings.
  • the connections are made one in the area of the root of the beam and the other in the area of the tip, in such a way that the wings of the beam become alternative beam paths.
  • the system used has as a differentiating feature the way to make the connections between the main cable and the carbon laminates, by means of branches of the main cable thanks to small pieces of auxiliary cable connected by means of a screwed connection to a metal plate.
  • the metallic plate is in charge of making the direct connection with the carbon.
  • the plates are placed during the beam's lamination process and in direct contact with the successive carbon fiber layers of the beam, being subsequently covered with the fiberglass layers used in the laminate of the following fiberglass layers .
  • the decks they are cured with the normal curing of said beam thus achieving a mechanically robust connection with the beam and electrically well connected with the carbon fiber.
  • the electrical connection can be further improved by using conductive resin in the area of the joint.
  • the conductive resin to be used is based on the realization of a controlled mixture of the resins usually used in the manufacture of wind turbine blades with nanofibers or carbon fiber nanotubes. The addition of these carbon fiber nanofibers or nanotubes gives the initial resin electrical properties several orders of magnitude different from the initial properties.
  • a specific embodiment of this resin contemplates the addition of a certain amount of carbon nanofibers or nanotubes, preferably in a proportion of between 3 and 30%, to an epoxy-type resin, commonly used in the manufacture of blades wind power. Subsequently, this conductive resin already mixed is applied in the mediations of the connection of the outer cable to the carbon laminate.
  • connection to the carbon is made by means of the metallic plates
  • the application of the conductive resin based on nanocomposites between the metallic part and the carbon laminate to be connected, as well as in the vicinity of the connection during The lamination of the composite part considerably improves the electrical properties of the connection, since the way the current is transmitted from the metallic part to each of the carbon fibers of the laminate is improved.
  • Another application of the conductive resin includes the application of this conductive resin in those areas where it is interesting to decrease the electrical resistance of the laminate, such as, for example, the application of the resin on the entire outer surface of the beam.
  • Another characteristic object of the invention is the adequate determination of the radii in which the connections to the blade beam are arranged to facilitate a good electrical connection and avoid any arc jump due to induction phenomena.
  • Figure 1 depicts the relative position between the carbon wings and the cable running through the core in a section of the blade.
  • Figure 2 shows the plate that makes the connection with the carbon fiber as well as the branches using auxiliary cables.
  • Figure 3 shows in detail the connection between the plate and the carbon fiber and the branches of the auxiliary cables to the main cable.
  • Figure 4 shows a section of the shovel in which all the components of the system and the connections between them are represented.
  • Figure 5 shows the ideal area for the application of the conductive resin based on nanocomposites in order to improve the conductivity of the connection.
  • the lightning rod system (1) with carbon fiber laminates (2) object of the invention uses the lightning rod system based on a main cable (6) which is additionally provided with some branches to connect it directly to the carbon fiber laminates (2), in this way we ensure that both systems are at the same potential.
  • the branches are made by means of two connections to each of the two carbon fiber laminates (2), the one corresponding to the upper part of the beam (10) and the corresponding one to the bottom of it, represented in the previous figure.
  • Said laminates are arranged on the two faces that are glued facing the shells of the blade called wings (4).
  • the connections are made, one in the area of the root of the beam and the other in the area of the tip, in such a way that the wings (4) of the beam become alternative beam paths.
  • the differentiating characteristic of the system used lies in the way of making the connections between the main cable (6) and the carbon laminates (2), this is achieved by means of branches of the main cable (6) thanks to small pieces of auxiliary cable (5) which are connected by means of a screwed connection to a metal plate (3).
  • the metallic plate (3) is responsible for making the direct connection with the carbon (2).
  • the plates (3) are placed during the beam lamination process on the carbon fiber layers of the beam and are subsequently covered with the fiberglass layers used in the subsequent laminate of the beam.
  • the plates (3) are cured with the normal curing of said beam, thus achieving a mechanically robust connection with the beam and electrically well connected with the carbon fiber (2).
  • the electrical connection can be further improved by using conductive resin in the area of the joint as shown in Figure 5.
  • the tip of the blade (11) incorporates a metallic receiver (7) that extends through the main cable (6) for the entire length of the core (8) of the beam (10). As mentioned previously, the connections are made, one at the root of the beam and the other at the tip area.
  • the ideal way to improve the electrical characteristics of the joint consists in the application of conductive resin based on carbon nanofibers or nanotubes (11) both between the plate and the last carbon layer as in the immediate vicinity of the connection plate. Both the conductive resin and the plates (3) are cured with the normal curing of said beam thus achieving a mechanically robust connection with the beam and electrically well connected with the carbon fiber (2). The resulting connection has some properties considerably better than if the conductive resin is not used.
  • the equipotential bonding between the different layers of carbon fiber is achieved thanks to windows, discontinuities or open holes in the layers fiberglass hybrid laminate.
  • the equipotential bonding between the different carbon fiber layers separated by fiberglass layers can be obtained through the use of conductive nanocomposites based resins throughout the initially insulating glass fiber layer or in discrete areas of the same, for example in the position in which the windows were placed.
  • the equipotential bonding of the lightning rod system is carried out by means of branches from the main cable (6) and thanks to auxiliary cables (5) connected to metallic pins, preferably conical in shape, which cross the hybrid laminate with fiberglass and carbon fiber fabrics, in such a way that these pins establish the connection between all the layers of carbon fiber.
  • the electrical connection can be further improved by using conductive resin based on nanofibers or carbon nanotubes.
  • This second embodiment also has the advantage that in case of having a hybrid laminate that alternates layers of glass fiber and layers of carbon fiber, the equipotential bonding between the different layers of carbon fiber is achieved thanks to the conical pins and is not it is necessary to provide windows, discontinuities or gaps in the fiberglass layers.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Nanotechnology (AREA)
  • Sustainable Development (AREA)
  • Sustainable Energy (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Physics & Mathematics (AREA)
  • Condensed Matter Physics & Semiconductors (AREA)
  • General Physics & Mathematics (AREA)
  • Materials Engineering (AREA)
  • Crystallography & Structural Chemistry (AREA)
  • Composite Materials (AREA)
  • Wind Motors (AREA)
  • Elimination Of Static Electricity (AREA)

Abstract

L'invention concerne un système paratonnerre pour pale d'aérogénérateur constitué de diverses liaisons disposées sur les laminés de fibre de carbone (2) de la pale (1), en assurant l'équipuissance de la surface des ailes (4) de la poutre (10) au moyen des dérivations d'un câble principal (6) à l'aide des câbles auxiliaires respectifs (5). Les câbles auxiliaires sont soit reliés à des bras métalliques (3) qui établissent une liaison directe avec les laminés de fibre de carbone (2) et sont installés pendant le procédé de lamination et de prise de la pale (1), soit reliés à des broches métalliques, de préférence, coniques qui traversent le laminé hybride. Autour de la liaison, on dispose une résine conductrice (11) à base de nanocomposites. Dans le cas d'un laminé hybride constitué de couches de fibre de carbone et de couches de fibre de verre, l'équipotentialisation des différentes couches est obtenue au moyen de fenêtres, de discontinuités ou de creux formés dans les couches de fibre de verre.
PCT/ES2005/070156 2004-11-11 2005-11-10 Systeme paratonnerre pour pale d'aerogenerateur constituee de lamines de fibre de carbone WO2006051147A1 (fr)

Priority Applications (4)

Application Number Priority Date Filing Date Title
US11/663,013 US7729100B2 (en) 2004-11-11 2005-11-10 Lightning conductor system for wind generator blades comprising carbon fibre laminates
ES05815151.5T ES2612031T3 (es) 2004-11-11 2005-11-10 Sistema pararrayos para pala de aerogenerador con laminados de fibra de carbono
CN2005800386665A CN101094986B (zh) 2004-11-11 2005-11-10 用于具有碳纤维叠层的风力涡轮机叶片的雷电保护系统
EP05815151.5A EP1826402B1 (fr) 2004-11-11 2005-11-10 Systeme paratonnerre pour pale d'aerogenerateur constituee de lamines de fibre de carbone

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
ESP200402847 2004-11-11
ES200402847A ES2255436B1 (es) 2004-11-11 2004-11-11 Sistema pararrayos para pala de aerogenerador con laminados de fibra de carbono.
ES200502728A ES2274726B1 (es) 2004-11-11 2005-11-10 Sistema pararrayos para pala de aerogenerador con resinas conductoras basadas en nanocomposites.
ESP200502728 2005-11-10

Publications (1)

Publication Number Publication Date
WO2006051147A1 true WO2006051147A1 (fr) 2006-05-18

Family

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Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/ES2005/070156 WO2006051147A1 (fr) 2004-11-11 2005-11-10 Systeme paratonnerre pour pale d'aerogenerateur constituee de lamines de fibre de carbone

Country Status (3)

Country Link
US (1) US7729100B2 (fr)
EP (1) EP1826402B1 (fr)
WO (1) WO2006051147A1 (fr)

Cited By (6)

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US20110020134A1 (en) * 2007-12-20 2011-01-27 Vestas Wind Systems A/S Lightning receptors comprising carbon nanotubes
EP2458207A2 (fr) 2010-11-30 2012-05-30 Gamesa Innovation & Technology, S.L. Système de conduction de foudre pour éolienne avec fibre-carbone feuilletée
EP2806160A1 (fr) 2013-05-23 2014-11-26 Nordex Energy GmbH Pale de rotor d'éolienne avec un dispositif de chauffage électrique et plusieurs paratonnerres
EP3091228A1 (fr) 2015-05-08 2016-11-09 Gamesa Innovation & Technology, S.L. Système de protection contre la foudre pour pales d'éolienne à composants structuraux conducteurs
EP3255274A1 (fr) 2016-06-07 2017-12-13 Gamesa Innovation & Technology, S.L. Système de protection de foudre pour pales d'éolienne doté de moyens optimisés pour injecter des courants de foudre dans les composants conducteurs de leurs coques
US10330087B2 (en) 2015-06-17 2019-06-25 Siemens Gamesa Renewable Energy Innovation & Technology, S. L. Lightning protection system for wind turbine blades with an effective injection area to carbon fiber laminates and a balanced lightning current and voltage distribution between different conductive paths

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US8962130B2 (en) * 2006-03-10 2015-02-24 Rohr, Inc. Low density lightning strike protection for use in airplanes
EP2013408B2 (fr) * 2006-05-02 2016-09-28 Rohr, Inc. Nacelles et ses composants utilisant des nanorenforcements
GB0805640D0 (en) * 2008-03-28 2008-04-30 Hexcel Composites Ltd Improved composite materials
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CN103079805B (zh) 2009-12-14 2015-02-11 应用纳米结构方案公司 含有碳纳米管并入的纤维材料的防火复合材料和制品
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EP2531558B1 (fr) 2010-02-02 2018-08-22 Applied NanoStructured Solutions, LLC Matières fibreuses à infusion de nanotubes de carbone contenant des nanotubes de carbone à alignement parallèle, leurs procédés de production, et matériaux composites dérivés
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US9500179B2 (en) 2010-05-24 2016-11-22 Vestas Wind Systems A/S Segmented wind turbine blades with truss connection regions, and associated systems and methods
DK2390498T3 (en) * 2010-05-27 2017-05-01 Siemens Ag Wind turbine blade with coating for lightning protection and method for producing the wind turbine blade
EP2596239A4 (fr) 2010-07-23 2014-06-25 Erico Int Corp Récepteur pour protection de pale d'éolienne contre la foudre
US9017854B2 (en) 2010-08-30 2015-04-28 Applied Nanostructured Solutions, Llc Structural energy storage assemblies and methods for production thereof
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US8449259B1 (en) * 2012-05-15 2013-05-28 Modular Wind Energy, Inc. Lightning protection for wind turbine blades, and associated systems and methods
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US10316827B2 (en) 2014-11-11 2019-06-11 General Electric Company Conduit assembly for a lightning protection cable of a wind turbine rotor blade
US9719495B2 (en) 2015-05-13 2017-08-01 General Electric Company Lightning protection system for wind turbine rotor blades
US10830214B2 (en) * 2017-03-22 2020-11-10 General Electric Company Method for securing a lightning receptor cable within a segmented rotor blade
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ES2799176T3 (es) 2018-01-11 2020-12-15 Siemens Gamesa Renewable Energy As Tapa de larguero, pala de turbina eólica, procedimiento de fabricación de una tapa de larguero, y procedimiento de fabricación de una pala de turbina eólica
EP3581796B1 (fr) 2018-06-14 2022-03-23 Siemens Gamesa Renewable Energy A/S Interface de conductivité étagée
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DE112020007455T5 (de) 2020-07-27 2023-07-13 Nabrawind Technologies, Sl Blitzschutzsystem für ein modulares rotorblatt und verfahren zur herstellung eines stapels
CN112901428B (zh) * 2021-03-23 2022-04-22 国电联合动力技术(保定)有限公司 一种风电叶片避雷系统的制作方法
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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20110020134A1 (en) * 2007-12-20 2011-01-27 Vestas Wind Systems A/S Lightning receptors comprising carbon nanotubes
EP2458207A2 (fr) 2010-11-30 2012-05-30 Gamesa Innovation & Technology, S.L. Système de conduction de foudre pour éolienne avec fibre-carbone feuilletée
EP2806160A1 (fr) 2013-05-23 2014-11-26 Nordex Energy GmbH Pale de rotor d'éolienne avec un dispositif de chauffage électrique et plusieurs paratonnerres
EP3091228A1 (fr) 2015-05-08 2016-11-09 Gamesa Innovation & Technology, S.L. Système de protection contre la foudre pour pales d'éolienne à composants structuraux conducteurs
US10125744B2 (en) 2015-05-08 2018-11-13 Gamesa Innovation & Technology, S. L. Lightning protection system for wind turbine blades with conducting structural components
US10330087B2 (en) 2015-06-17 2019-06-25 Siemens Gamesa Renewable Energy Innovation & Technology, S. L. Lightning protection system for wind turbine blades with an effective injection area to carbon fiber laminates and a balanced lightning current and voltage distribution between different conductive paths
EP3255274A1 (fr) 2016-06-07 2017-12-13 Gamesa Innovation & Technology, S.L. Système de protection de foudre pour pales d'éolienne doté de moyens optimisés pour injecter des courants de foudre dans les composants conducteurs de leurs coques
US10753341B2 (en) 2016-06-07 2020-08-25 Siemens Gamesa Renewable Energy Innovation & Technology, S.L. Lightning system for wind turbine blades with optimized means for injecting lightning currents in conductive components of their shells

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US20080073098A1 (en) 2008-03-27
EP1826402A4 (fr) 2012-10-31
EP1826402A1 (fr) 2007-08-29
US7729100B2 (en) 2010-06-01
EP1826402B1 (fr) 2016-08-24

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